首页> 外文会议>Fuzzy Systems, 1994. IEEE World Congress on Computational Intelligence., Proceedings of the Third IEEE Conference on >An application of Fuzzy ARTMAP neural network to real-time learning and prediction of time-variant machine tool error maps
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An application of Fuzzy ARTMAP neural network to real-time learning and prediction of time-variant machine tool error maps

机译:模糊ARTMAP神经网络在时变机床误差图实时学习与预测中的应用

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The problem of real-time learning of thermal error maps in machine tools is investigated. This problem is treated as an incremental approximation of a functional mapping between thermal sensor readings and the associated positional errors at each location of the cutting tool. The Fuzzy ARTMAP is used as a tool to achieve this approximation in real-time. Experimental measurements of the positional errors for a turning center were performed using a laser ball-bar over two separate thermal duty cycles. The Fuzzy ARTMAP was trained online using the data collected during the first duty cycle. Data from a new duty cycle is used to test the performance of the trained network. Results show that the Fuzzy ARTMAP is not only able to learn thermal errors in real-time but can also make accurate predictions of the test data.
机译:研究了机床中热误差图的实时学习问题。该问题被视为热传感器读数与切削刀具每个位置处的相关位置误差之间的功能映射的增量近似值。 Fuzzy ARTMAP用作实时实现此近似的工具。使用激光球杆在两个单独的热占空比上进行了车削中心位置误差的实验测量。使用在第一个工作周期中收集的数据对模糊ARTMAP进行了在线培训。来自新占空比的数据将用于测试经过训练的网络的性能。结果表明,模糊ARTMAP不仅能够实时了解热误差,而且可以对测试数据做出准确的预测。

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